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Metabolic Engineering of Folate and Its Precursors in Mexican Common Bean (Phaseolus Vulgaris L.)

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Specialties Biology
Biotechnology
Date 2016 Mar 22
PMID 26997331
Citations 16
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Abstract

Folate (vitamin B9) deficiency causes several health problems globally. However, folate biofortification of major staple crops is one alternative that can be used to improve vitamin intakes in populations at risk. We increased the folate levels in common bean by engineering the pteridine branch required for their biosynthesis. GTP cyclohydrolase I from Arabidopsis (AtGchI) was stably introduced into three common bean Pinto cultivars by particle bombardment. Seed-specific overexpression of AtGCHI caused significant increases of up to 150-fold in biosynthetic pteridines in the transformed lines. The pteridine boost enhanced folate levels in raw desiccated seeds by up to threefold (325 μg in a 100 g portion), which would represent 81% of the adult recommended daily allowance. Unexpectedly, the engineering also triggered a general increase in PABA levels, the other folate precursor. This was not observed in previous engineering studies and was probably caused by a feedforward mechanism that remains to be elucidated. Results from this work also show that common bean grains accumulate considerable amounts of oxidized pteridines that might represent products of folate degradation in desiccating seeds. Our study uncovers a probable different regulation of folate homoeostasis in these legume grains than that observed in other engineering works. Legumes are good sources of folates, and this work shows that they can be engineered to accumulate even greater amounts of folate that, when consumed, can improve folate status. Biofortification of common bean with folates and other micronutrients represents a promising strategy to improve the nutritional status of populations around the world.

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References
1.
Rech E, Vianna G, Aragao F . High-efficiency transformation by biolistics of soybean, common bean and cotton transgenic plants. Nat Protoc. 2008; 3(3):410-8. DOI: 10.1038/nprot.2008.9. View

2.
Basset G, Quinlivan E, Ziemak M, de la Garza R, Fischer M, Schiffmann S . Folate synthesis in plants: the first step of the pterin branch is mediated by a unique bimodular GTP cyclohydrolase I. Proc Natl Acad Sci U S A. 2002; 99(19):12489-94. PMC: 129472. DOI: 10.1073/pnas.192278499. View

3.
Chen Z, Naito S, Nakamura I, Beachy R . Regulated expression of genes encoding soybean beta-conglycinins in transgenic plants. Dev Genet. 1989; 10(2):112-22. DOI: 10.1002/dvg.1020100207. View

4.
Sahr T, Ravanel S, Rebeille F . Tetrahydrofolate biosynthesis and distribution in higher plants. Biochem Soc Trans. 2005; 33(Pt 4):758-62. DOI: 10.1042/BST0330758. View

5.
Fan J, Ye J, Kamphorst J, Shlomi T, Thompson C, Rabinowitz J . Quantitative flux analysis reveals folate-dependent NADPH production. Nature. 2014; 510(7504):298-302. PMC: 4104482. DOI: 10.1038/nature13236. View